In-Situ Imaging of Liquid Phase Separation in Molten Alloys Using Cold Neutrons †
<p>Images of the experimental setup at the CG-1D beamline at the High Flux Isotope Reactor (HFIR) at Oak Ridge National Laboratory. (<b>a</b>) Sample of CoCrCu, Al<sub>2</sub>O<sub>3</sub> crucible, lid, and Nb mounting adaptor placed near a ruler for scale. (<b>b</b>) The crucible mounted to the sample stick. (<b>c</b>) The high-vacuum Institut Laue–Langevin (ILL) furnace placed between the detector and incident neutron beam slits.</p> "> Figure 2
<p>ILL Niobium Foil Vacuum Furnace. Temperature range of 30–1500 °C (A) Interface connection M8 × 1.25 (male) (B) Bore size diameter = 50 mm (C) Distance interface to beam center = 31.75 mm (D) Beam center to sample space bottom = 11.862 cm (E) Distance stick flange to beam center = 41.275 cm. Image of ILL furnace “HOT-A” courtesy of Oak Ridge National Laboratory Sample Environment Group<span class="html-italic">.</span></p> "> Figure 3
<p>Temperature vs. time of the stacked CoCrCu system heating from 900 to 1500 °C and back to 900 °C in 25 °C increments.</p> "> Figure 4
<p>(<b>a</b>) Backscattered electron image of CoCrCu displaying 2 distinct phases: Cu-rich (top), CoCr-rich (bottom). Note, tiny black spots are pores generated from the initial grinding/polishing process. (<b>b</b>) Optical micrograph of the bottom-half cross-section of an arc-melted CoCrCu button.</p> "> Figure 5
<p>Energy dispersive X-ray spectroscopy (EDS) maps of the phase separated regions of the electromagnetically levitated and cast CoCrCu alloy. The colored regions correspond to the atomic composition present in the material: (<b>a</b>) Cobalt only (<b>b</b>) Chromium only (<b>c</b>) Copper only (<b>d</b>) Map of all elements in the system.</p> "> Figure 6
<p>Room temperature radiograph of two heterogeneous arc-melted CoCrCu samples stacked inside a small crucible. The lighter regions are the Cu-rich phase (>95%) and are segregated to the surface of the buttons as well as randomly distributed globules inside the bulk. The darker regions are Co-Cr-rich and make up the rest of the arc-melted button.</p> "> Figure 7
<p>Melting and liquid phase separation of stacked CoCrCu samples. (<b>a</b>) During initial heating, the two as-cast buttons are intact. (<b>b</b>) The Cu-rich phase melts first between 1075 and 1100 °C, and (<b>c</b>) pools at the bottom of the crucible. (<b>d</b>) The Cu-lean phase fully melts upon heating to 1500 °C. Full video available in the supplemental.</p> "> Figure 8
<p>Cooling, macroscopic void formation, and solidification.</p> "> Figure 9
<p>(<b>a</b>) Room temperature radiograph of CoCrCu after the melt cycle. The darkest region atop is the Co-Cr-rich phase, while the lighter region to the bottom right was the formation of a void. The lighter gray region toward the bottom right is the Cu-rich phase. (<b>b</b>) Photograph of the sample after removal from the crucible, displaying the void that formed during solidification.</p> "> Figure 10
<p>Reconstructed computed tomography of the CoCrCu system with void present in the bottom left, and CoCr-rich (red) globules dispersed throughout Cu-rich (green) phase.</p> ">
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Preparation and Microstructural Characterization
2.2. Furnace Setup and Sample Installation
2.3. Neutron Imaging
3. Results
3.1. Microstructural Characterization Using Electron Microscopy
3.2. Neutron Imaging
4. Discussion
4.1. Microstructure
4.2. Neutron Imaging
5. Conclusions
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
References
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HEA | References |
---|---|
CoCrCuFeMn | [30] |
CoCrCuFeNi | [29,31,32,33,34] |
CoCrCuFeMnNiTiV | [35] |
CoCrCuFeMoNi | [36] |
CoCrCuFeNiTi | [37] |
Composition | Density (g/cm3) | Transmission Δx = 4 mm | Transmission Δx = 8 mm |
---|---|---|---|
Co | 8.9 | 12% | 1% |
Cr | 7.2 | 77% | 59% |
Cu | 9.0 | 63% | 40% |
CoCr | 8.0 | 31% | 10% |
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Derimow, N.A.; Santodonato, L.J.; Mills, R.; Abbaschian, R. In-Situ Imaging of Liquid Phase Separation in Molten Alloys Using Cold Neutrons. J. Imaging 2018, 4, 5. https://doi.org/10.3390/jimaging4010005
Derimow NA, Santodonato LJ, Mills R, Abbaschian R. In-Situ Imaging of Liquid Phase Separation in Molten Alloys Using Cold Neutrons. Journal of Imaging. 2018; 4(1):5. https://doi.org/10.3390/jimaging4010005
Chicago/Turabian StyleDerimow, Nicholas Alexander, Louis Joseph Santodonato, Rebecca Mills, and Reza Abbaschian. 2018. "In-Situ Imaging of Liquid Phase Separation in Molten Alloys Using Cold Neutrons" Journal of Imaging 4, no. 1: 5. https://doi.org/10.3390/jimaging4010005